4.7 Article

Enhanced Atmospheric Turbulence Resiliency With Successive Interference Cancellation DSP in Mode Division Multiplexing Free-Space Optical Links

Journal

JOURNAL OF LIGHTWAVE TECHNOLOGY
Volume 40, Issue 24, Pages 7769-7778

Publisher

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/JLT.2022.3209092

Keywords

Mode division multiplexing (MDM); free-space optics (FSO); multiple-input multiple-output (MIMO); successive interference cancellation (SIC); turbulence

Funding

  1. EPSRC [EP/T009047/1, EP/T009012/1, EP/S003436/1, EP/S016171/1]
  2. European Union [713694]
  3. Future and Emerging Technologies Open grant agreement Super-pixels [829116]

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We experimentally demonstrate the enhanced atmospheric turbulence resiliency in a 137.8 Gbit/s/mode mode-division multiplexing free-space optical communication link through the application of a successive interference cancellation digital signal processing algorithm. The turbulence resiliency is further enhanced through redundant receive channels in the mode-division multiplexing link. The proof of concept demonstration achieves a record-high mode- and polarization-division multiplexing channel number, line rate, and net spectral efficiency in emulated turbulent links in a mode-division multiplexing free-space optical system.
We experimentally demonstrate the enhanced atmospheric turbulence resiliency in a 137.8 Gbit/s/mode mode-division multiplexing free-space optical communication link through the application of a successive interference cancellation digital signal processing algorithm. The turbulence resiliency is further enhanced through redundant receive channels in the mode-division multiplexing link. The proof of concept demonstration is performed using commercially available mode-selective photonic lanterns, a commercial transponder, and a spatial light modulator based turbulence emulator. In this link, 5 spatial modes with each mode carrying 34.46 GBaud dual-polarization quadrature phase shift keying signals are successfully transmitted with an average bit error rate lower than the hard-decision forward error correction limit. As a result, we achieved a record-high mode- and polarization-division multiplexing channel number of 10, a record-high line rate of 689.23 Gbit/s, and a record-high net spectral efficiency of 13.9 b/s/Hz in emulated turbulent links in a mode-division multiplexing free-space optical system.

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